Huber, J.; Fabritius, H.-O.; Griesshaber, E.; Ziegler, A. S.: Function-related adaptations of ultrastructure, mineral phase distribution and mechanical properties in the incisive cuticle of mandibles of Porcellio scaber Latreille, 1804. Journal of Structural Biology 188 (1), pp. 1 - 15 (2014)
Huber, J.; Fabritius, H.-O.; Griesshaber, E.; Schmahl, W. W.; Ziegler, A. S.: Varying mechanical properties within the incisive cuticle of the terrestrial isopod Porcellio scaber resulting from region-dependent ultrastructure, elemental distribution and arrangement of calcite crystals. DGM Bio-inspired Materials: International Conference on Biological Material Science, Potsdam, Germany (2014)
Huber, J.; Ziegler, A. S.; Fabritius, H.-O.; Griesshaber-Schmahl, E.: Be inspired by isopod cuticle: Unusual cuticle organisation and mechanical properties within the incisive edge of the mandibles in two Crustacean species. EURO BioMAT Conference, Weimar, Germany (2013)
Huber, J.; Fabritius, H.-O.; Ziegler, A. S.: Structure, mineral distribution and mechanical properties of the Pars incisiva cuticule in the mandibles of Porcellio scaber Latreille, 1804. 105th Annual Meeting of the German Zoological Society, Konstanz, Germany (2012)
Huber, J.; Ziegler, A. S.; Fabritius, H.-O.; Griesshaber-Schmahl, E.: Be inspired by isopod cuticle: Unusual cuticle organisation and mechanical properties within the incisive edge of the mandibles in two Crustacean species. EURO BioMAT Conference, Weimar, Germany (2013)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
Within this project, we will investigate the micromechanical properties of STO materials with low and higher content of dislocations at a wide range of strain rates (0.001/s-1000/s). Oxide ceramics have increasing importance as superconductors and their dislocation-based electrical functionalities that will affect these electrical properties. Hence…
In this project, we aim to enhance the mechanical properties of an equiatomic CoCrNi medium-entropy alloy (MEA) by interstitial alloying. Carbon and nitrogen with varying contents have been added into the face-centred cubic structured CoCrNi MEA.
Biological materials in nature have a lot to teach us when in comes to creating tough bio-inspired designs. This project aims to explore the unknown impact mitigation mechanisms of the muskox head (ovibus moschatus) at several length scales and use this gained knowledge to develop a novel mesoscale (10 µm to 1000 µm) metamaterial that can mimic the…